Get the name of the caller script in bash script

Question

Let's assume I have 3 shell scripts:

script_1.sh

#!/bin/bash
./script_3.sh

script_2.sh

#!/bin/bash
./script_3.sh

the problem is that in script_3.sh I want to know the name of the caller script.

so that I can respond differently to each caller I support

please don't assume I'm asking about $0 cause $0 will echo script_3 every time no matter who is the caller

here is an example input with expected output

• ./script_1.sh should echo script_1

• ./script_2.sh should echo script_2

• ./script_3.sh should echo user_name or root or anything to distinguish between the 3 cases?

Is that possible? and if possible, how can it be done?

this is going to be added to a rm modified script... so when I call rm it do something and when git or any other CLI tool use rm it is not affected by the modification

Answer 1

Based on @user3100381's answer, here's a much simpler command to get the same thing which I believe should be fairly portable:

PARENT_COMMAND=$(ps -o comm= $PPID)

Replace comm= with args= to get the full command line (command + arguments). The = alone is used to suppress the headers.

See: http://pubs.opengroup.org/onlinepubs/009604499/utilities/ps.html

Answer 2

In case you are sourceing instead of calling/executing the script there is no new process forked and thus the solutions with ps won't work reliably.

Use bash built-in caller in that case.

$ cat -n server.sh 
  1  #!/bin/bash
  2  
  3  source common.sh
  4  
  5  [[ $# -ne 2 ]] && warn_me "Error: You messed up"
  6
$ cat -n common.sh 
  1  #!/bin/bash
  2  
  3  function warn_me() {
  4      echo `caller | awk '{print $2":"$1}'` says: "$@"
  5  }
  6
$ ./server.sh 
./server.sh:5 says: Error: You messed up
$ 

Source

Answer 3

The $PPID variable holds the parent process ID. So you could parse the output from ps to get the command.

#!/bin/bash
PARENT_COMMAND=$(ps $PPID | tail -n 1 | awk "{print \$5}")

Answer 4

Based on @J.L.answer, with more in depth explanations, that works for linux :

cat /proc/$PPID/comm

gives you the name of the command of the parent pid

If you prefer the command with all options, then :

cat /proc/$PPID/cmdline

explanations :

• $PPID is defined by the shell, it's the pid of the parent processes
• in /proc/, you have some dirs with the pid of each process (linux). Then, if you cat /proc/$PPID/comm, you echo the command name of the PID

Check man proc

Answer 5

Couple of useful files things kept in /proc/$PPID here

• /proc/*some_process_id*/exe A symlink to the last executed command under *some_process_id*
• /proc/*some_process_id*/cmdline A file containing the last executed command under *some_process_id* and null-byte separated arguments

So a slight simplification.

sed 's/\x0/ /g' "/proc/$PPID/cmdline"

Answer 6

If you have /proc:

$(cat /proc/$PPID/comm)

Answer 7

Declare this:

PARENT_NAME=`ps -ocomm --no-header $PPID`

Thus you'll get a nice variable $PARENT_NAME that holds the parent's name.

Answer 8

You can simply use the command below to avoid calling cut/awk/sed:

ps --no-headers -o command $PPID

If you only want the parent and none of the subsequent processes, you can use:

ps --no-headers -o command $PPID | cut -d' ' -f1

Answer 9

As others have mentioned, the output of ps -o comm= $PPID is truncated to 15 characters. In another question the answer was

cut -d $'\0' -f 2 /proc/$PPID/cmdline

Obviously you must have /proc on your system. Note that the output of ps -o args= $PPID does not have 0x00 as separator.

You can then use, e.g. basename or readlink -f, to maybe add more sense to the calling filename.

Answer 10

You could pass in a variable to script_3.sh to determine how to respond...

script_1.sh

#!/bin/bash
./script_3.sh script1

script_2.sh

#!/bin/bash
./script_3.sh script2

script_3.sh

#!/bin/bash
if [ $1 == 'script1' ] ; then
  echo "we were called from script1!"
elsif [ $1 == 'script2' ] ; then
  echo "we were called from script2!"
fi